The ratio of active masses of , , and present in a single gaseous mixture inside a closed vessel is: — Chemical Equilibrium Chemistry Question
Question
The ratio of active masses of $22\text{ g}$ $CO_2$, $3\text{ g}$ $H_2$, and $7\text{ g}$ $N_2$ present in a single gaseous mixture inside a closed vessel is:
Answer: D
💡 Solution & Explanation
Moles of $CO_2 = \frac{22}{44} = 0.5$. Moles of $H_2 = \frac{3}{2} = 1.5$. Moles of $N_2 = \frac{7}{28} = 0.25$. Since they are in the same volume $V$, the ratio of their active masses is the ratio of their moles: $0.5 : 1.5 : 0.25$. Dividing by $0.5$, we get $1 : 3 : 0.5$.
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